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Splash-cup plants accelerate raindrops to disperse seeds

机译:防溅杯植物可加速雨滴散布种子

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摘要

The conical flowers of splash-cup plants Chrysosplenium and Mazus catch raindrops opportunistically, exploiting the subsequent splash to disperse their seeds. In this combined experimental and theoretical study, we elucidate their mechanism for maximizing dispersal distance. We fabricate conical plant mimics using three-dimensional printing, and use high-speed video to visualize splash profiles and seed travel distance. Drop impacts that strike the cup off-centre achieve the largest dispersal distances of up to 1 m. Such distances are achieved because splash speeds are three to five times faster than incoming drop speeds, and so faster than the traditionally studied splashes occurring upon horizontal surfaces. This anomalous splash speed is because of the superposition of two components of momentum, one associated with a component of the drop's motion parallel to the splash-cup surface, and the other associated with film spreading induced by impact with the splash-cup. Our model incorporating these effects predicts the observed dispersal distance within 6–18% error. According to our experiments, the optimal cone angle for the splash-cup is 40°, a value consistent with the average of five species of splash-cup plants. This optimal angle arises from the competing effects of velocity amplification and projectile launching angle.
机译:飞溅的杯形植物金莲花和马祖族的圆锥形花朵趁机抓住雨滴,利用随后的飞溅来分散种子。在这项结合实验和理论研究的过程中,我们阐明了它们最大化分散距离的机理。我们使用三维打印制作圆锥形植物模拟物,并使用高速视频可视化飞溅概况和种子传播距离。撞击杯子偏心的跌落冲击可实现最大1 m的最大分散距离。之所以能够达到这样的距离,是因为飞溅速度比进入的液滴速度快三到五倍,并且比在水平面上发生的传统研究飞溅速度还要快。这种异常的飞溅速度是由于动量的两个分量的叠加而引起的,一个分量与液滴的运动平行于该飞溅杯表面的分量有关,而另一个与由于飞溅杯撞击而引起的薄膜扩散有关。我们的模型综合了这些影响,可以预测观察到的分散距离在6-18%的误差范围内。根据我们的实验,防溅杯的最佳锥角为40°,该值与五种防溅杯植物的平均值一致。这个最佳角度是由速度放大和弹丸发射角度的竞争效应产生的。

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